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Wing flexibility effects on the flight performance of an insect-like flapping-wing micro-air vehicle

机译:机翼柔韧性对像昆虫一样的拍打翼微型航空器飞行性能的影响

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This study explores the effects of wing flexibility on several characteristics of flight, in this case the trim conditions, power requirements and dynamic stability of an insect-like flapping-wing micro-air vehicle (FWMAV) based on the hawkmothManduca sexta. The wing structure is analyzed by the finite-element method. A potential-based aerodynamic model which encompasses the unsteady panel method and the extended unsteady vortex-lattice method is employed to compute the aerodynamic forces. The motions of the FWMAV are obtained using a flexible multibody dynamics program coupled with the potential-based aerodynamic model. The results of this study show that the trim conditions of insect-like flexible and rigid FWMAVs may differ significantly from each other. When the flight speed is less than 3.0 m/s, using flexible wings is favorable, as they help the FWMAV reduce the power requirement and stabilize the lateral dynamics. However, at 3.0 m/s, these advantages are almost unnoticeable, while at 4.0 m/s, the flexible insect-like FWMAV requires even more mechanical power than its rigid counterpart.
机译:这项研究探讨了机翼柔韧性对飞行若干特性的影响,在这种情况下,基于鹰蛾曼杜卡(Meduca sexta)的昆虫状拍翼微型微型飞行器(FWMAV)的修剪条件,功率要求和动态稳定性。通过有限元方法分析机翼结构。基于势能的空气动力学模型包含了非定常面板法和扩展的非定常涡旋-格子法,用于计算空气动力。 FWMAV的运动是通过使用灵活的多体动力学程序以及基于势能的空气动力学模型获得的。这项研究的结果表明,类似昆虫的柔性和刚性FWMAV的修剪条件可能会彼此显着不同。当飞行速度低于3.0 m / s时,使用柔性机翼是有利的,因为它们有助于FWMAV降低功率需求并稳定侧向动力。但是,在3.0 m / s的速度下,这些优势几乎是不明显的,而在4.0 m / s的速度下,类似于昆虫的柔性FWMAV所需要的机械动力甚至要比刚性的FWMAV高。

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